论文标题
通过连续量子非解析测量测量的核自旋挤压:一项理论研究
Nuclear spin squeezing by continuous quantum non-demolition measurement: a theoretical study
论文作者
论文摘要
我们建议在室温下,利用地面氦3核旋转与环境的弱耦合,以产生长寿命的宏观量子状态,核自旋挤压状态。为了对极化集体核自旋的横向分量进行量子非拆卸测量,我们将群体保持在氦3亚稳态状态,并具有放电。与基本状态交换碰撞相关的集体旋转与$ f = 1/2 $ criptable水平与基态杂种相关。为了访问核自旋波动,一个连续测量光腔中泄漏的光,在那里它与亚稳态的集体旋转相互作用。在三个耦合的集体旋转模型(核,亚稳态和Stokes)中,我们计算了以平均光学信号为条件的核自旋挤压组件$ i_z $。在光子计数方案中,被挤压的观测值为$ i_z^2 $,而不是$ i_z $。在同源性检测方案中,我们解决了以测量为条件的系统状态的随机方程。 $ i_z $的条件期望值在线性上取决于信号,$ i_z $的条件差异不取决于它。条件差异为$(γ_ {\ rm sq} t)^{ - 1} $,其中压缩速率$γ_ {\ rm sq} $在较弱的原子 - 场库中的腔体处于较弱的腔内,并以强大的稳定性稳定地稳定性地稳定性地计算出来,这是在型号弱型中的光线上的光强度,可恢复到基础上的速率。包括在墙壁上取消亚稳定原子的驱引信,该原子以有效的速率$γ_α$诱导核自旋脱位,我们找到一个极限$ \ propto(γ_α/γ_ {\ rm sq}) sq})^{ - 1/2} $。
We propose to take advantage of the weak coupling of ground-state helium-3 nuclear spin to its environment to produce long-lived macroscopic quantum states, nuclear spin squeezed states, in a gas cell at room temperature. To perform a quantum non-demolition measurement of a transverse component of the polarized collective nuclear spin, we maintain a population in helium-3 metastable state with a discharge. The collective spin associated to $F=1/2$ metastable level hybridizes with the ground state one by metastability exchange collisions. To access nuclear spin fluctuations, one continuously measures the light leaking out of an optical cavity, where it has interacted dispersively with the metastable state collective spin. In a three coupled collective spin model (nuclear, metastable and Stokes), we calculate moments of the nuclear spin squeezed component $I_z$ conditioned on the time averaged optical signal. In the photon counting scheme, the squeezed observable is $I_z^2$ rather than $I_z$. In the homodyne detection scheme, we solve the stochastic equation for the system state conditioned on the measurement; the conditional expectation value of $I_z$ depends linearly on the signal and the conditional variance of $I_z$ does not depend on it. The conditional variance decreases as $(Γ_{\rm sq}t)^{-1}$, where the squeezing rate $Γ_{\rm sq}$ depends linearly on the light intensity in the cavity at weak atom-field coupling and saturates at strong coupling to the ground state metastability exchange effective rate, proportional to the metastable atom density. Including de-excitation of metastable atoms at the walls, which induces nuclear spin decoherence with an effective rate $γ_α$, we find a limit $\propto(γ_α/Γ_{\rm sq})^{1/2}$ on the conditional variance reached in a time $\propto(γ_αΓ_{\rm sq})^{-1/2}$.